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Selected manufacturing techniques of nanomaterials

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Konferencja
12th International Scientific Conference CAM3S'2006, 27-30th November 2006, Gliwice-Zakopane
Języki publikacji
EN
Abstrakty
EN
Purpose: Enabling nanofabrication techniques as tools for experiments to understand the underlying science and engineering in the nanometer scale are required. This paper is a resume a range of technology and characterization tools relevant for nanoelectronics devices. Design/methodology/approach: An overview on bottom - up and bottom - down fabrication techniques are presented in this paper. As an alternative to the continually increasing cost of nanotechnology for manufacturing electronic devices, new strategies are examined in research, which are based on basic principles of physics and chemistry. For example, molecular self-organization mechanisms are developed in order to manufacture well-defined nanostructures with desired properties. Findings: This paper includes description of three methods of production nanolayers and monolayers molecular self-organization, Langmuir-Blodget films and Nanoimprint Litography. Research limitations/implications: The most extreme approach is to build nanostructures atom by atom with the help of scanning tunneling microscope at low temperatures. This is very slow method to build nanostructures, usually a couple of hours. An alternative approach for the formation of nanostructures is self-organization of atoms. Practical implications: The greatest advantage of litographic patterning is very large variety of different structures which can be defined by lithographic methods, Langmuir - Blodget (LB) films is another unpopular method to produce nanomaterials. Originality/value: Materials engineering technology stands today at the edge of a huge challenge: produce cheap nanomaterials for nanoelectronics. Building materials from the bottom up requires a multidisciplinary approach. This arena is unquestionably in the nano-dimension, where all fields of science and engineering meet.
Rocznik
Strony
83--86
Opis fizyczny
Bibliogr. 19 poz., rys.
Twórcy
autor
  • Division of Nanocrystalline and Functional Materials and Sustainable Pro-ecological Technologies, Institute of Engineering Materials and Bimaterials, Silesian University of Technology, ul. Konarskiego 18 a, 44-100 Gliwice, aleksandra.baron@polsl.pl
Bibliografia
  • [1] S.Zhang, Building from the bottom up, Materials Today, 5 (2003) 20-27.
  • [2] "Fundamental of Nanoelectronics", 34th IFF Spring School 2003, edited by Forschungszenter Julich Institute of Solid State Research.
  • [3] B. Ziębowicz, D. Szewieczek, L.A. Dobrzański, J. Wysłocki, A. Przybył, Structure and properties of the composite materials consisting of the nanocrystalline fe73.5cu1nb3si13.5b9 alloy powders and polyethylene, Journal of Materials Processing Technology, 162-163 (2005) 149-155.
  • [4] B. Ziębowicz, D. Szewieczek, L.A. Dobrzański, Magnetic properties and structure of nanocomposites of powder Fe73,5Cu1Nb3Si13,5B9 alloy-polymer type, Journal of Materials Processing Technology, 157-158 (2004) 776-780.
  • [5] G.B. Khomutov, V.V. Kislov, M.N. Antipina, R.V. Gainutdinov, S.P. Gubin, A.Yu. Obydenov, S.A. Pavlov, A.A. Rakhnyanskaya, A.N. Sergeev-Cherenkov, E.S. Soldatov, D.B. Suyatin, A.L. Tolstikhina, A.S. Trifonov, T.V. Yurova, Interfacial nanofabrication strategies in development of new functional nanomaterials and planar supramolecular nanostructures for nanoelectronics and nanotechnology, Microelectronic Engineering, 69 (2003) 373-383.
  • [6] T. Ogino, Self-organization of nanostructures on Si wafers using surface structure control, Surface Science, 386 (1997) 137.
  • [7] X.M. He, H.D. Li, C.H. Liu, W.Z. Li, IBAD Processing of surface Coatings and Nanocrystalline Multi-layers, Journal of Materials Processing Technology, 63 (1997) 902-907.
  • [8] M. Maret, B. Gilles, J.P. Simon, M. Verdier, I. Guhr, B. Riedlinger, M. Albrecht, G. Schatz: Self-assembling of alloy nanostructures on van der Waals surfaces, Journal of Crystal Growth, 275 (2005) 2289-2293.
  • [9] Benzhong Wanga, Wei Zhao, Ao Chen, Soo-Jin Chua, Formation of nanoimprinting mould through use of nanosphere lithography, Journal of Crystal Growth, 288 (2006) 200-204.
  • [10] A.M. Contreras, J. Grunes, X.-M. Yan, A. Liddle, G.A. Somorjai, Fabrication of platinum nanoparticles and nanowires by electron beam lithography (EBL) and nanoimprint lithography (NIL): compareison of ethylene hydrogenation kinetics, Catalysis Letters, 3-4 (2005) 115-125.
  • [11] J. Zhu, M. Yudasaka, M.Zhang, J. Fan, D. Kasuya, S. Iijima, Directed assembly of nanostructured carbon materials on to atterned polymer surfaces, Applied Physics A: Materials Science & Processing, 81 (2005) 449-452.
  • [12] T. Müller, K.-H. Heinig, B. Schmidt: Template-directed self-assembly of buried nanowires and the pearling instability, Materials Science and Engineering, 19 (2002) 209-213.
  • [13] F. Alves,.A.-D. Bensalah, New 1D-2D magnetic sensors for applied electromagnetic engineering, Journal of Materials Processing Technology, 181 (2007) 194-198.
  • [14] R.K. Shervedani, S.A. Mozaffari, Preparation and electrochemical characterization of a new nanosensor based on self-assembled monolayer of cysteamine functionalized with phosphate groups, Surface & Coatings Technology, 198 (2005) 123-128.
  • [15] S. Chakraborty, H. Satou, and H. Sakata, Direct current conductivity and oxygen gas-sensing properties of iron-antimony-tellurite glasses, Journal Applied Physis, 82 (1997)5520-5525.
  • [16] I.L. Emelianov, V.V. Khatko, Gas sensing properties of the composite Langmuir-Blodgett films: effects of the film thickness and the Cd2q addition into the subphase. Sensors and Actuators, 60 (1999) 221-227.
  • [17] M.H.Hammonda, K.J. Johnson, S.L. Rose-Pehrsson, J. Ziegler, H. Walker, K. Caudy, D. Gary, D. Tillett, A novel chemical detector using cermet sensors and pattern recognition methods for toxic industrial chemicals, Sensors and Actuators, 116 (2006) 135-144.
  • [18] A.Jiménez-Morales, P. Aranda, J.C. Galván, Nanocomposite materials based on organopolysiloxane/macrocyle systems for electrochemical sensors, Journal of Materials Processing Technology, 143-144 (2003) 5-10.
  • [19] Ming-Sheng Zhang, Jian Yu, Junhao Chu, Qiang Chen, Wanchun Chen: Microstructures and photoluminescence of barium titanate nanocrystals synthesized by the hydrothermal process, Journal of Materials Processing Technology, 137 (2003) 78-81.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BOS5-0018-0010
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